Smoothed Particle Hydrodynamics with Stress Points and Centroid Voronoi Tessellation (CVT) Topology Optimization

Author:

Ghaffari Mir Ali1,Xiao Shaoping1

Affiliation:

1. Department of Mechanical and Industrial Engineering and Center for Computer-Aided Design, The University of Iowa, Iowa City, IA 52242, USA

Abstract

Various formulations of smoothed particle hydrodynamics (SPH) have been presented by scientists to overcome inherent numerical difficulties including instabilities and inconsistencies. Low approximation accuracy could cause a result of particle inconsistency in SPH and other meshfree methods. In this study, centroid Voronoi tessellation (CVT) topology optimization is used for rearrangement of particles so that the inconsistency due to irregular particle arrangement can be corrected. Using CVT topology optimization method, the SPH particles, which are generated randomly inside a predetermined domain, are moved to the centroids, i.e., the center of mass of the corresponding Voronoi cells based on Lloyd’s algorithm. The volume associated with each particle is determined by its Voronoi cell. On the other hand, it has been shown that particle methods with stress point integration are more stable than the ones using nodal integration. Conventional SPH approximations only use SPH particles, and it results in the so-called tensile instability. In this paper, a new approach of using stress points is introduced to assist SPH approximations and stabilize the SPH methods.

Publisher

World Scientific Pub Co Pte Lt

Subject

Computational Mathematics,Computer Science (miscellaneous)

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1. Stress-weighted centroidal Voronoi tessellation for structural design;Finite Elements in Analysis and Design;2023-04

2. A Voronoi strain-based method for granular materials and continua;Computational Particle Mechanics;2022-08-18

3. Accuracy analysis of improved SPH methods for solution of quadratic PDEs representing potential flows and elasticity problems;Journal of the Brazilian Society of Mechanical Sciences and Engineering;2022-03-19

4. A general SPH framework for transient seepage flows through unsaturated porous media considering anisotropic diffusion;Computer Methods in Applied Mechanics and Engineering;2021-12

5. Sparse Inpainting with Smoothed Particle Hydrodynamics;SIAM Journal on Imaging Sciences;2021-01

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